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Avatar of Patrick Hsu.
Avatar of Patrick Hsu.
Algorithm Research & Development @適着三維科技股份有限公司 TG3D Studio Inc.
2021 ~ Present
Software Engineer
Within one month
level with a size error margin of less than 3 cm. Computer Vision Body Reconstruction Stable Diffusion DApp: Exercise Classification Implemented real-time activity recognition for specified exercises, including but not limited to push-ups and squats, enabling accurate tracking and analysis of workout routines. Skeleton Detection Motion Classification Body AI: 3D Body Data Analysis Engage in a variety of AI side projects focused on leveraging 3D body data, encompassing tasks such as Body ID Recognition, Body Measurements Prediction, and Body Shape Classification. Mesh Data Processing Body Modulization: SMPL Project Engineer • Acer Inc. JanMay 2021 Working
Python
AI & Machine Learning
Image Processing
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
國立台灣大學
生物產業機電工程所
Avatar of the user.
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
Python
R
Natural Language Processing (NLP)
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
國立政治大學(National Chengchi University)
資訊科學系
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Data Engineer @TSMC 台積電
2022 ~ Present
資料分析師、演算法工程師、軟體工程師、軟體專案管理
Within one month
Backend Development
NLP
Python
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
國立中央大學 National Central University
網路學習科技研究所
Avatar of Chun-Jung Huang.
Avatar of Chun-Jung Huang.
OPC Chief Engineer @TSMC
2020 ~ Present
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
in distributed computing, optimizing code execution across thousands of systems to significantly improve processing speed and efficiency. ◆Developed sophisticated data visualization tools to distill complex datasets into actionable insights, aiding strategic decision-making. The University of Tokyo, Foreign Researcher (OctSep◆Pioneered a neural network-based approach for cell image classification and data visualization, enhancing lab capabilities in biological research. ◆Designed a user-friendly GUI for neural network model training, democratizing access to advanced computational tools for non-programmers. Education National Chiao-Tung University, Ph.D. - Photonics, 2015 ~ 2020 Development of Intelligent Wearable Near Infrared Spectroscopy
Deep learning with TensorFlow
Translational Research
Clinical Research
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
National Chiao-Tung University
Ph.D. - Clinical Engineering
Avatar of Ahmed Yousaf.
Avatar of Ahmed Yousaf.
Past
Electrical Section Head @Sayyed Engineers Limited
2014 ~ 2016
Electrical and Electronics Engineer
Within three months
based Project using SIMATIC SSignal conditioning of data received from the Aircraft Engine MFI-17 Super Mushshak Part Task Trainer (Simulator) Team lead of the Hardware installation and interfacing with soft instruments Using National Instruments NI-Daq 6343 Hardware designing of Trim Panel using Arduino Uno Foreign Object Debris Detection, Classification, and Localization using Deep Learning Python language based Project using YOLO-V7 (you only look once) Addressed the Class imbalance in FOD-A Dataset FOD detection/localization with improved accuracy Data Acquisition design and implementation of a Level-D Simulator (C130-H) NI-PXI Chassis-based DATA ACQUISITION
Microsoft Office
C++
C#
Unemployed
Ready to interview
Full-time / Interested in working remotely
6-10 years
University of Central Punjab
Electrical and Power Transmission Installation/Installer, General
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Avatar of the user.
設備專案工程師 @日月光半導體製造股份有限公司 ADVANCED SEMICONDUCTOR ENGINEERING, INC.
2020 ~ Present
工程師
Within three months
Equipment repair and maintenance
Wire bonding process
Python
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
國立高雄科技大學 National Kaohsiung University of Science and Technology
電腦與通訊工程系
Avatar of chiyun chao.
Avatar of chiyun chao.
Research & Development Engineer @三竹資訊股份有限公司
2023 ~ Present
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
and deployed it to the environment. Major Product and Project Experience AI training platform backend development with Label Studio/DVC/MLflow Developed training templates. AI-SaaS Implemented NLU tasks using BERT-based models to provide functions such as named entity recognition, entity relation extraction, and article classification . Implemented NLG tasks using T5 to provide article summarization functionality. NetProbe - DPI Use 1D-CNN and MLP models for encrypted network traffic identification . Use the Autoencoder model for unknown packet detection . Taiwan Ministry of the Interior Investigation Bureau Police Station - AI Crime Investigation Trace Analysis
Python
JAVA
Linux
Employed
Open to opportunities
Full-time / Not interested in working remotely
4-6 years
國立中央大學 National Central University
資訊工程
Avatar of 陳惠龍.
Avatar of 陳惠龍.
Data science lecturer @Ittraining
2020 ~ Present
Data Scientist 資料科學家_數據分析師
Within one month
氣道擴散偵測競賽 I:運用物體偵測作法於找尋STAS, 2022/06/02 - Bronze medal (team): (Kaggle) VinBigData Chest X-ray Abnormalities Detection: Automatically localize and classify thoracic abnormalities from chest radiographs, 2021/03/30 Classification (影像分類): - Bronze medal (solo): (Kaggle) Human Protein Atlas - Single Cell Classification: Find individual human cell differences in microscope images, 2021/05/12 - 5th place (team): (Aidea AI CUP) Mango grade classification, 2020/12/29. https://reurl.cc/
nlp-rasa
recommender system
pytorch tensorflow
Employed
Open to opportunities
Part-time / Interested in working remotely
More than 15 years
Purdue University
School of civil engineering (Stochastic & statistical hydrology)
Avatar of Alex Yu.
Avatar of Alex Yu.
Product Manager @Linker Vision
2023 ~ Present
PM/產品經理/專案管理
Within one month
detection, segmentation, and classification AI scenario. Good communication skills with doctors' demands and collaboration with colleagues. Patent Disclosure: Ultrasound detect and notify system. (serial number: I學歷 SepJun 2 National Taiwan University of Science and Technology Masters in Electrical Engineering Thesis "Online Data Stream Analytics for Dynamic Environments Using Self-Regularized Learning Framework", IEEE journal SepJun 2020 Yuan Ze University Bachelor in Electrical Engineering Skills Customer/VC negotiation and customer services DL/ML/AI algorithm, keen problem solving 3D modeling (Blender) Python, Matlab, Tensorflow, Keras Object detection, Classification, [email protected]
Business Development
Deep Learning
PYTHON
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
國立台灣科技大學 National Taiwan University of Science and Technology
電機工程
Avatar of Chin Ya Chang.
Offline
Avatar of Chin Ya Chang.
Offline
Senior Software Engineer @International Integrated Systems, Inc.(IISI)
2020 ~ Present
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
modules:Resblock, GhostBottleNeck, SE-layer, DarkBlock. Used Attention mechanism:StripPooling, MixedPoolingModule, SelectiveKernel . According to the input data, use convolutional layers of different dimensions (1D~3D) to learn information. Used weight standardization to assign weights to improve model training effect. Built a composite model of regression and classification. AI development environment management Used docker or Anaconda to establish and maintain the development environment with GPU. Set up the environment to use the LLM (LLAMA2, Taiwan-LLaMa, Codellama, Llama2-chinese-13b, etc.) Model Training and Tuning Tips Adjusted the data batch size according to the
Python
PyTorch
Machine Learning
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
私立中原大學 Chung Yuan Christian University
環境工程

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AI Senior Software Engineer
Logo of International Integrated Systems, Inc.(IISI).
International Integrated Systems, Inc.(IISI)
2020 ~ Present
Taipei, 台灣
Professional Background
Current status
Employed
Job Search Progress
Open to opportunities
Professions
Software Engineer, Python Developer, Machine Learning Engineer
Fields of Employment
Artificial Intelligence / Machine Learning, Software, Information Services
Work experience
4-6 years
Management
None
Skills
Python
PyTorch
Machine Learning
Languages
English
Intermediate
Job search preferences
Positions
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Job types
Full-time
Locations
台灣新北市, 台灣台北, 台灣
Remote
Interested in working remotely
Freelance
Yes, I freelance in my spare time
Educations
School
私立中原大學 Chung Yuan Christian University
Major
環境工程
Print

Chin Ya Chang

Machine Learning Engineer

  New Taipei City , Taiwan

   [email protected]

Current Position: AI Team - Software Engineer at the Central Weather Bureau, specializing in machine learning. Tasks include image generation, numerical prediction, data calibration, recommendation systems, and text generation using data from satellites, radar, and geographic information.

I stay updated on AI advancements by studying research papers and implementing new approaches into projects. Recently, I've focused on deploying Large Language Models (LLM) in customer-oriented chatbots.

Proficient in Docker for establishing and maintaining development environments, deploying projects to client environments.

Previous experience as a data analyst in R&D, conducting big data analysis and applying machine learning for data calibration at an instrument manufacturing company.

Holder of a master's degree in Environmental Engineering with expertise in statistical software (R, Python, ArcGIS, VBA) for data crawling, big data analysis, and geographic information mapping.

    

Skills

  • Deep model architecture building experience

    • built the architecture of various generative models:BASNET, DCGAN, VQ-VAE, DANET, SPNET.

    • Used plug-and-play modules:Resblock, GhostBottleNeck, SE-layer, DarkBlock.

    • Used Attention mechanism:StripPooling, MixedPoolingModule, SelectiveKernel.

    • According to the input data, use convolutional layers of different dimensions (1D~3D) to learn information.

    • Used weight standardization to assign weights to improve model training effect.

    • Built a composite model of regression and classification.

  • AI development environment management

    • Used docker or Anaconda to establish and maintain the development environment with GPU.

    • Set up the environment to use the LLM (LLAMA2, Taiwan-LLaMa, Codellama, Llama2-chinese-13b, etc.)

  • Model Training and Tuning Tips

    • Adjusted the data batch size according to the hardware performance, and adjusted the normalization method in hidden layers.

    • Used Microsoft nni to adjust hyperparameters during model architecture and training.

    • Combined with Explainable AI methods in the training process.

    • Trained with Optuna and TPOT in machine learning projects.

  • References Rewrite Schema 
    For deep learning projects, we referred to various literature and developed reusable modules that consistently improved model performance.
    • Examples include SelectiveKernel, GhostModule, MixedPoolingModule.
  • Statistics Checking Skills

    • Regression model
      R-squared, RMSE, MAE, Residual Analysis, Correlation, POD, FAR, etc. 

    • Classification model
      ROC curve, AUC, Confusion Matrix, F1-score, recall.

Work Experience

International Integrated Systems, Inc.(IISI) July 2020 ~

Senior Software Engineer

  1. Image Generation - Rainfall Map Prediction & Air Force Radar Map Prediction 

    • Developed an AutoEncoder with multiple channel inputs for image prediction and generation, tested serveral architectures, and incorporated attention mechanisms and skip connections.
    • Improved accuracy by 22% and reduced RMSE by 70% compared to previous versions.
    • Published in the American Meteorological Society in 2022, set to submit to IPWG-11 in 2024.
  2. Image Recognition - Typhoon Intensity Detection

    • Developed a model with comparable accuracy to traditional methods for typhoon intensity detection.
  3. Numerical Prediction - System Monitoring and Anomaly Detection

    • Significantly enhanced accuracy from 50% to 95% in system monitoring and anomaly detection.
  4. Recommendation System - Host Associations in Anomalous Cases

    • Implemented a graph neural network achieving 90% accuracy in identifying associated hosts with anomalies.
  5. Data Clustering & Text Parsing - Error Message Recommendation System

    • Proposed solutions through clustering methods and NLP preprocessing of error messages.
  6. Numerical Calibration - Small Projects with AutoML Tools

    • Calibration of solar irradiance data, with an original accuracy of approximately 60%, increased to 92% after model calibration.
    • Water level detection for anomaly detection achieved an accuracy of 94%.
  7. Natural Language Processing & Large Language Model Application - Generating Forecast Text

    • Developed dialogues for Large Language Models to produce accurate forecast text.
  8. Large Language Model Application - LLAMA Open Source Model Application

    • Integrated LLAMA models locally, utilizing chat functions and text generation.
  9. Establishing, Deploying, and Maintaining Development Environments - Docker, Anaconda

    • Successfully packaged and deployed projects in client environments, maintaining GPU and JupyterLab support.

Autotronic Enterprise Co., Ltd. (Aecl)May 2018 - Jun 2020

Data Analysis Engineer 

  • Programming:

    • Designed anomaly detection programs for various instruments produced by the company.
    • Rewrote data encoding programs to ensure secure data transmission.
    • Visualized and generated necessary data for R&D and project requirements.
    • Conducted big data analysis using extensive instrument data with SQL and noSQL databases.
  • Data Calibration - Machine Learning:

    • Integrated inspection through statistical tests and feature engineering.
    • Applied statistical models for quality inspection and utilized machine learning for data calibration.
    • Achieved over 90% accuracy in instrument data calibration using machine learning methods such as XGBoost, NGBoost, LightGBM.
  • Web Scraping:

    • Developed web scraping programs using tools like Selenium and BeautifulSoup for machine learning data.
    • Utilized corresponding APIs for data retrieval and aggregation.
  • Documentation:

    • Responsible for writing reports in proposals related to instrument comparisons and maintenance analysis.

Education

Sep 2016 - Jul 2017

Chung Yuan Christian University

Master’s Degree 

˙ Environmental Engineering

Apr 2012 - Jul 2016

Chung Yuan Christian University

Bachelor of Engineering (BEng)

 ˙  Environmental Engineering

Language


  • English: Intermediate level
  • Chinese: Native proficiency
  • Japanese: Basic understanding
Resume
Profile

Chin Ya Chang

Machine Learning Engineer

  New Taipei City , Taiwan

   [email protected]

Current Position: AI Team - Software Engineer at the Central Weather Bureau, specializing in machine learning. Tasks include image generation, numerical prediction, data calibration, recommendation systems, and text generation using data from satellites, radar, and geographic information.

I stay updated on AI advancements by studying research papers and implementing new approaches into projects. Recently, I've focused on deploying Large Language Models (LLM) in customer-oriented chatbots.

Proficient in Docker for establishing and maintaining development environments, deploying projects to client environments.

Previous experience as a data analyst in R&D, conducting big data analysis and applying machine learning for data calibration at an instrument manufacturing company.

Holder of a master's degree in Environmental Engineering with expertise in statistical software (R, Python, ArcGIS, VBA) for data crawling, big data analysis, and geographic information mapping.

    

Skills

  • Deep model architecture building experience

    • built the architecture of various generative models:BASNET, DCGAN, VQ-VAE, DANET, SPNET.

    • Used plug-and-play modules:Resblock, GhostBottleNeck, SE-layer, DarkBlock.

    • Used Attention mechanism:StripPooling, MixedPoolingModule, SelectiveKernel.

    • According to the input data, use convolutional layers of different dimensions (1D~3D) to learn information.

    • Used weight standardization to assign weights to improve model training effect.

    • Built a composite model of regression and classification.

  • AI development environment management

    • Used docker or Anaconda to establish and maintain the development environment with GPU.

    • Set up the environment to use the LLM (LLAMA2, Taiwan-LLaMa, Codellama, Llama2-chinese-13b, etc.)

  • Model Training and Tuning Tips

    • Adjusted the data batch size according to the hardware performance, and adjusted the normalization method in hidden layers.

    • Used Microsoft nni to adjust hyperparameters during model architecture and training.

    • Combined with Explainable AI methods in the training process.

    • Trained with Optuna and TPOT in machine learning projects.

  • References Rewrite Schema 
    For deep learning projects, we referred to various literature and developed reusable modules that consistently improved model performance.
    • Examples include SelectiveKernel, GhostModule, MixedPoolingModule.
  • Statistics Checking Skills

    • Regression model
      R-squared, RMSE, MAE, Residual Analysis, Correlation, POD, FAR, etc. 

    • Classification model
      ROC curve, AUC, Confusion Matrix, F1-score, recall.

Work Experience

International Integrated Systems, Inc.(IISI) July 2020 ~

Senior Software Engineer

  1. Image Generation - Rainfall Map Prediction & Air Force Radar Map Prediction 

    • Developed an AutoEncoder with multiple channel inputs for image prediction and generation, tested serveral architectures, and incorporated attention mechanisms and skip connections.
    • Improved accuracy by 22% and reduced RMSE by 70% compared to previous versions.
    • Published in the American Meteorological Society in 2022, set to submit to IPWG-11 in 2024.
  2. Image Recognition - Typhoon Intensity Detection

    • Developed a model with comparable accuracy to traditional methods for typhoon intensity detection.
  3. Numerical Prediction - System Monitoring and Anomaly Detection

    • Significantly enhanced accuracy from 50% to 95% in system monitoring and anomaly detection.
  4. Recommendation System - Host Associations in Anomalous Cases

    • Implemented a graph neural network achieving 90% accuracy in identifying associated hosts with anomalies.
  5. Data Clustering & Text Parsing - Error Message Recommendation System

    • Proposed solutions through clustering methods and NLP preprocessing of error messages.
  6. Numerical Calibration - Small Projects with AutoML Tools

    • Calibration of solar irradiance data, with an original accuracy of approximately 60%, increased to 92% after model calibration.
    • Water level detection for anomaly detection achieved an accuracy of 94%.
  7. Natural Language Processing & Large Language Model Application - Generating Forecast Text

    • Developed dialogues for Large Language Models to produce accurate forecast text.
  8. Large Language Model Application - LLAMA Open Source Model Application

    • Integrated LLAMA models locally, utilizing chat functions and text generation.
  9. Establishing, Deploying, and Maintaining Development Environments - Docker, Anaconda

    • Successfully packaged and deployed projects in client environments, maintaining GPU and JupyterLab support.

Autotronic Enterprise Co., Ltd. (Aecl)May 2018 - Jun 2020

Data Analysis Engineer 

  • Programming:

    • Designed anomaly detection programs for various instruments produced by the company.
    • Rewrote data encoding programs to ensure secure data transmission.
    • Visualized and generated necessary data for R&D and project requirements.
    • Conducted big data analysis using extensive instrument data with SQL and noSQL databases.
  • Data Calibration - Machine Learning:

    • Integrated inspection through statistical tests and feature engineering.
    • Applied statistical models for quality inspection and utilized machine learning for data calibration.
    • Achieved over 90% accuracy in instrument data calibration using machine learning methods such as XGBoost, NGBoost, LightGBM.
  • Web Scraping:

    • Developed web scraping programs using tools like Selenium and BeautifulSoup for machine learning data.
    • Utilized corresponding APIs for data retrieval and aggregation.
  • Documentation:

    • Responsible for writing reports in proposals related to instrument comparisons and maintenance analysis.

Education

Sep 2016 - Jul 2017

Chung Yuan Christian University

Master’s Degree 

˙ Environmental Engineering

Apr 2012 - Jul 2016

Chung Yuan Christian University

Bachelor of Engineering (BEng)

 ˙  Environmental Engineering

Language


  • English: Intermediate level
  • Chinese: Native proficiency
  • Japanese: Basic understanding